Back to Search
Start Over
A Mixed Integer Formulation for Energy-efficient Multistage Adsorption Dryer Design
- Source :
- Drying Technology, 8, 30, 873-883, Drying Technology 30 (2012) 8, Drying Technology, 30(8), 873-883
- Publication Year :
- 2012
-
Abstract
- This work presents a mixed integer nonlinear programming (MINLP) formulation for the design of energy-efficient multistage adsorption dryers within constraints on product temperature and moisture content. Apart from optimizing temperatures and flows, the aim is to select the most efficient adsorbent per stage and product to air flow configuration. Superstructure models consisting of commonly used adsorbents such as zeolite, alumina, and silica-gel are developed and optimized for a two-stage, low-temperature, adsorption drying system. Results show that the optimal configuration is a hybrid system with zeolite as the first-stage adsorbent and silica-gel as the second-stage adsorbent in counter-current flow between drying air and product. A specific energy consumption of 2,275 kJ/kg is achieved, which reduces to 1,730 kJ/kg with heat recovery by a heat exchanger. Compared to a conventional two-stage dryer at the same drying temperature, this represents a 59% reduction in energy consumption. The optimal system ensures the exhaust air temperature of the first-stage regenerator is high enough to regenerate the second-stage adsorbent so no utility energy is spent in the second stage. A higher second-stage adsorbent wheel speed favors energy performance as it becomes optimized for energy recovery while the first is optimized for dehumidification. Although this work considers three candidate adsorbents in a two-stage system, the same reasoning can be applied to systems with more stages and adsorbents. The developed superstructure optimization methodology can, by extension, be applied to optimize multistage hybrid drying systems in general for any objective. © 2012 Copyright Taylor and Francis Group, LLC.
- Subjects :
- Work (thermodynamics)
drying processes
General Chemical Engineering
integration
FI - Functional Ingredients
system
Adsorption drying
Adsorption
Life
Heat recovery ventilation
Heat exchanger
Physical and Theoretical Chemistry
Product quality
Process engineering
Biology
Dryer energy optimization
VLAG
Energy recovery
Waste management
business.industry
Multistage dryers
Leerstoelgroep Meet-, regel- en systeemtechniek
Energy consumption
simulation
Mixed integer nonlinear programming
Systems and Control Group
regel- en systeemtechniek
desiccant wheel
kinetics
quality
Hybrid dryers
Regenerative heat exchanger
Healthy for Life
EELS - Earth, Environmental and Life Sciences
business
optimization
Healthy Living
performance
Leerstoelgroep Meet
Efficient energy use
Subjects
Details
- Language :
- English
- ISSN :
- 07373937
- Database :
- OpenAIRE
- Journal :
- Drying Technology, 8, 30, 873-883, Drying Technology 30 (2012) 8, Drying Technology, 30(8), 873-883
- Accession number :
- edsair.doi.dedup.....9c9031addd46cc7a8a544e338b7193ed